Mallis Christopher S, Saha Manik Lal, Stang Peter J, Russell David H
Department of Chemistry, Texas A&M University, College Station, TX, 77843, USA.
Department of Chemistry, University of Utah, Salt Lake City, UT, 84112, USA.
J Am Soc Mass Spectrom. 2019 Sep;30(9):1654-1662. doi: 10.1007/s13361-019-02276-6. Epub 2019 Jul 17.
Coordination-driven self-assembly (CDSA) is increasingly used to synthesize coordination complexes containing metal-centered electron acceptors and typically nitrogen-containing electron donors. Characterization of the structures obtained from CDSA via crystallographic or spectroscopic means is limited due to difficulties in forming single crystals for X-ray studies and overlapping precursor and product signals in NMR. Here, we employ ion mobility-mass spectrometry (IM-MS), which provides a direct measure of size and shape of the CDSA complexes, to study the intact reaction products of a rhomboid-shaped complex. This approach negates the need for product isolation and crystallization and allows for tracking of the product distribution as a function of time. A potential challenge of IM-MS is that the size/shape of the observed CDSA complexes can vary with internal energy; however, we show that proper tuning of the instrument reduces the effects of collisional activation thereby allowing for retention of ion conformations that reflect solution-phase ion structures. Graphical Abstract.
配位驱动自组装(CDSA)越来越多地用于合成含有金属中心电子受体和通常含氮电子供体的配位络合物。由于难以形成用于X射线研究的单晶以及NMR中前体和产物信号的重叠,通过晶体学或光谱手段对CDSA所得结构进行表征受到限制。在这里,我们采用离子淌度质谱(IM-MS),它可以直接测量CDSA络合物的大小和形状,以研究菱形络合物的完整反应产物。这种方法无需进行产物分离和结晶,并允许跟踪产物分布随时间的变化。IM-MS的一个潜在挑战是观察到的CDSA络合物的大小/形状可能会随内能而变化;然而,我们表明对仪器进行适当调整可以减少碰撞激活的影响,从而保留反映溶液相离子结构的离子构象。图形摘要。